Reaction kettle for antioxidant production
Technical Field
The utility model relates to a reaction kettle for producing an antioxidant, in particular to a reaction kettle for producing a quantitatively added antioxidant.
Background
Antioxidants are a class of chemicals that primarily function to prevent or slow the oxidation of substances in the presence of oxygen to deteriorate or rot. The antioxidant is widely applied to the fields of food, plastics, grease, paint, rubber, medicine and the like, so that the production of the antioxidant has wide market prospect.
The raw materials for producing the antioxidant mainly comprise reaction raw materials, a solvent, an auxiliary agent and the like. The raw materials with high quality are required to be selected as much as possible to ensure the quality and stability of the antioxidant, the production of the antioxidant depends on a series of reaction processes, and the control of the reaction conditions has important influence on the quality and yield of the product. Generally, the reaction raw materials and the solvent are required to be added in the reaction process, and a certain amount of accelerator, stabilizer and the like are added at the same time to control the reaction rate and the quality of the product.
When the antioxidant is produced, the reaction raw materials and the solvent are required to be added, the additives are required to be uniformly mixed with the reaction raw materials to enable the reaction to be completed, the stirring device in the reaction kettle is only provided with a stirring rod, the stirring effect is poor, meanwhile, the additives are required to be quantitatively added, and the adding reaction speed is very slow.
Disclosure of utility model
To solve the problems set forth in the background art. The utility model provides a reaction kettle for producing an antioxidant.
The reaction kettle for producing the antioxidant comprises a reaction kettle body, wherein a power box is arranged on the upper surface of the reaction kettle body, a stirring assembly is arranged on the upper surface of the power box, a fixed plate is fixedly connected to the upper surface of the power box, two material storage cylinders are arranged on the upper surface of the fixed plate, the lower surface of each material storage cylinder is communicated with one end of a material discharge pipe b, the other end of each material discharge pipe b penetrates through the fixed plate to be communicated with the upper surface of the corresponding material metering cylinder, an electromagnetic valve is arranged on the outer surface of each material discharge pipe b, the upper surface of each material metering cylinder is fixedly connected with the upper surface of the corresponding fixed plate, two mounting grooves are formed in the left side surface and the right side surface of the inner wall of each material metering cylinder, a quantitative assembly is arranged in each mounting groove, the lower surface of each quantitative cylinder is communicated with the upper surface of the reaction kettle body through a connecting pipe, the lower surface of each reaction kettle body is communicated with one end of each material discharge pipe a, and a flap valve a is arranged on the outer surface of each material discharge pipe a.
Preferably, the stirring assembly comprises a servo motor arranged on the upper surface of the power box, an output shaft of the servo motor penetrates through a bearing on the upper surface of the power box to be fixedly connected with the upper surface of a gear a, the outer surface of the gear a is respectively meshed with the outer surfaces of two gears b, and the lower surface of the gears b is fixedly connected with the top end of the stirring paddle.
Preferably, the lower surface of the gear a is fixedly connected with the top end of the connecting rod, a plurality of stirring blades are symmetrically and fixedly connected on the outer surface of the connecting rod, two connecting plates are fixedly connected on the left side surface and the right side surface of the connecting rod, and two scraping plates a are respectively fixedly connected on the opposite surfaces of the two connecting plates.
Preferably, two scrapers b are fixedly connected to the left side surface and the right side surface of the connecting rod, and the right side surface of the scrapers b is in sliding connection with the right side surface of the inner wall of the discharge pipe a.
Preferably, the quantitative component comprises a weight sensor arranged on the lower surface of the inner wall of the mounting groove, one opposite surfaces of the weight sensors are fixedly connected with the left side surface and the right side surface of the cone bucket respectively, the bottom end of the cone bucket is communicated with one end of a discharge pipe c, and the discharge pipe c is spliced with the inner wall of the connecting pipe.
Preferably, a flap valve b is mounted on the outer surface of the connecting pipe.
Compared with the prior art, the utility model has the beneficial effects that:
According to the utility model, the gear a and the two gears b are driven by the servo motor to rotate, the two stirring paddles are driven by the rotation of the gear b to stir and mix the reaction raw materials and the solvent in the reaction kettle body, the raw materials and the solvent adhered to the inner wall of the reaction kettle body are scraped by the rotation of the connecting rod, the connecting plate and the two scraping plates a, the raw materials are prevented from being unevenly mixed, and meanwhile, the stirring She Fanxiang is driven by the connecting rod to rotate in a staggered manner, so that the raw material processing loss and the cleaning difficulty are reduced, and the problem that the stirring effect is poor due to the fact that the stirring device in the traditional device is only provided with the stirring rod is solved.
According to the utility model, raw materials in the storage cylinder are discharged into the quantitative cylinder through the discharge pipe b, the raw materials in the quantitative cylinder are measured through the cone hopper and the weight sensor, the flap valve b is rotated, and the raw materials are discharged into the reaction kettle body through the connecting pipe, so that quantitative addition is rapidly carried out on the raw materials, and the problem that the additive of the conventional device needs to be quantitatively added and the addition reaction speed is very slow is solved.
Drawings
The accompanying drawings are included to provide a further understanding of the utility model and are incorporated in and constitute a part of this specification, illustrate the utility model and together with the embodiments of the utility model, serve to explain the utility model. In the drawings:
FIG. 1 is a schematic diagram of the structure of the present utility model;
FIG. 2 is a schematic cross-sectional view of the present utility model;
FIG. 3 is an exploded perspective view of the present utility model;
in the figure, 1, a reaction kettle body, 2, a discharge pipe a, 3, a flap valve a, 4 and a power box;
51 parts of mixing components, 52 parts of servo motors, 53 parts of gears a, 53 parts of gears b, 54 parts of stirring paddles;
6. Stirring blade 7, scraping plate a, 8, connecting rod 9, scraping plate b, 10, fixing plate 11, storage cylinder 12, electromagnetic valve 13, discharging pipe b, 14, quantitative cylinder 15 and mounting groove;
The quantitative assembly comprises 161 parts of a cone hopper, 162 parts of a weight sensor, 163 parts of a discharge pipe c;
17. connecting pipe, 18, flap valve b, 19 and connecting plate.
Detailed Description
The following description of the embodiments of the present utility model will be made clearly and completely with reference to the accompanying drawings, in which it is apparent that the embodiments described are only some embodiments of the present utility model, but not all embodiments. All other embodiments, which can be made by those skilled in the art based on the embodiments of the utility model without making any inventive effort, are intended to be within the scope of the utility model.
Examples
Referring to fig. 1-3, the utility model provides a reaction kettle for producing an antioxidant, which comprises a reaction kettle body 1, wherein a power box 4 is arranged on the upper surface of the reaction kettle body 1, stirring components are arranged on the upper surface of the power box 4, a fixed plate 10 is fixedly connected on the upper surface of the power box 4, two material storage cylinders 11 are arranged on the upper surface of the fixed plate 10, the lower surface of the material storage cylinders 11 is communicated with one end of a material discharge pipe b13, the other end of the material discharge pipe b13 passes through the fixed plate 10 and is communicated with the upper surface of a material metering cylinder 14, an electromagnetic valve 12 is arranged on the outer surface of the material discharge pipe b13, the upper surface of the material metering cylinder 14 is fixedly connected with the upper surface of the fixed plate 10, two mounting grooves 15 are formed in the left and right side surfaces of the inner wall of the material metering cylinder 14, a quantitative component is arranged in the mounting grooves 15, the lower surface of the material metering cylinder 14 is communicated with the upper surface of the reaction kettle body 1 through a connecting pipe 17, the lower surface of the reaction kettle body 1 is communicated with one end of a material discharge pipe b 2, and a material turning plate 3a is arranged on the outer surface of the material discharge pipe a3.
Specifically, the stirring assembly comprises a servo motor 51 arranged on the upper surface of the power box 4, an output shaft of the servo motor 51 penetrates through a bearing on the upper surface of the power box 4 to be fixedly connected with the upper surface of a gear a52, the outer surfaces of the gear a52 are respectively meshed with the outer surfaces of two gears b53, and the lower surface of the gear b53 is fixedly connected with the top end of a stirring paddle 54;
The servo motor 51 drives the gear a52 and the two gears b53 to rotate, and the gears b53 rotate to drive the two stirring paddles 54 to stir and mix the reaction raw materials and the solvent in the reaction kettle body 1.
Specifically, the lower surface of the gear a52 is fixedly connected with the top end of the connecting rod 8, a plurality of stirring blades 6 are symmetrically and fixedly connected to the outer surface of the connecting rod 8, two connecting plates 19 are fixedly connected to the left side surface and the right side surface of the connecting rod 8, and two scraping plates a7 are respectively fixedly connected to the opposite surfaces of the two connecting plates 19;
The gear a52 rotates to drive the connecting rod 8, the connecting plate 19 and the two scraping plates a7 to rotate so as to scrape the raw materials and the solvent adhered to the inner wall of the reaction kettle body 1, so that uneven raw material mixing is avoided, and the raw material processing loss and the cleaning difficulty are reduced.
Specifically, two scraping plates b9 are fixedly connected on the left side surface and the right side surface of the connecting rod 8, and the right side surface of each scraping plate b9 is in sliding connection with the right side surface of the inner wall of the discharge pipe a 2;
The connecting rod 8 rotates to drive the scraping plate b9 to rotate so as to scrape the raw materials adhered to the inner wall of the discharge pipe a2, and raw material loss is reduced.
Specifically, by arranging the weight sensors 162 on the lower surface of the inner wall of the mounting groove 15 on the quantitative assembly, one surface of each of the two weight sensors 162 is fixedly connected with the left and right side surfaces of the cone 161, the bottom end of the cone 161 is communicated with one end of the discharge pipe c163, and the discharge pipe c163 is spliced with the inner wall of the connecting pipe 17;
The electromagnetic valve 12 is arranged, raw materials in the storage cylinder 11 are discharged into the quantitative cylinder 14 through the discharge pipe b13, raw materials in the quantitative cylinder 14 are measured through the cone hopper 161 and the weight sensor 162, the flap valve b18 is rotated, and the raw materials are discharged into the reaction kettle body 1 through the connecting pipe 17, so that quantitative addition is performed on the raw materials rapidly.
Specifically, a flap valve b18 is installed by providing the outer surface of the connection pipe 17;
turning flap valve b18 opens connecting tube 17.
The working principle and the using flow of the utility model are as follows:
The utility model, when in use, comprises the following steps:
The servo motor 51 drives the gear a52 and the two gears b53 to rotate, the gear b53 rotates to drive the two stirring paddles 54 to stir and mix the reaction raw materials and the solvent in the reaction kettle body 1, the gear a52 rotates to drive the connecting rod 8, the connecting plate 19 and the two scraping plates a7 to rotate to scrape the raw materials and the solvent adhered to the inner wall of the reaction kettle body 1, raw material mixing unevenness is avoided, the connecting rod 8 rotates to drive the scraping plates b9 to rotate to scrape the raw materials adhered to the inner wall of the discharge pipe a2, raw material processing loss and cleaning difficulty are reduced, the electromagnetic valve 12 is arranged, the raw materials in the storage barrel 11 are discharged into the quantitative barrel 14 through the discharge pipe b13, the raw materials in the quantitative barrel 14 are measured through the cone hopper 161 and the weight sensor 162, the turnover valve b18 is rotated, the raw materials are discharged into the reaction kettle body 1 through the connecting pipe 17, and thus the raw materials are rapidly quantitatively added.
The circuit, the electronic components and the modules are all in the prior art, and can be completely realized by a person skilled in the art, and needless to say, the protection of the utility model does not relate to the improvement of software and a method.
It should be noted that the above-mentioned embodiments are merely preferred embodiments of the present utility model, and the present utility model is not limited thereto, but may be modified or substituted for some of the technical features thereof by those skilled in the art. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present utility model should be included in the protection scope of the present utility model.